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A Benchmark Comparison of σ/σ and π/π Dispersion: the Dimers of Naphthalene and Decalin, and Coronene and Perhydrocoronene

机译:σ/σ和π/π色散的基准比较:萘和萘烷的二聚体,并苯和过氢并苯

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摘要

The stacking interaction between n systems is a well-recognized structural motif, but stacking between a systems was long considered of secondary importance. A recent paper points out that σ stacking can reach the energy of chemical bonds and concludes that "σ/σ and π/π interactions are equally important" (Fokin, A. F.; Gerbig, D.; Schreiner, P. R. J. Am. Chem. Soc. 2011, 133, 20036). Our analysis shows that strong dispersion interaction requires rigid subsystems and good fits of their repulsive potential walls, conditions which are satisfied for both graphenes and larger graphanes (perhydrographenes). Comparison of the dimerization energies of decalin and perhydrocoronene with those of the naphthalene and coronene dimers at the coupled cluster (CC) CCSD(T) level confirms the substantial σ-stacking energies in graphanes but shows lower binding energies than do the B97D calculations of Fokin et al. Graphane dimerization energies are substantially lower at the CC level than the corresponding π-stacking energies: the value for perhydrocoronene is only 67% of the value for coronene, and the difference increases with system size. Our best estimate for the dimerization energy of naphthalene is 6.1 kcal/mol. Spin-component scaled MP2 is unbalanced: it gives only 70% of the CCSD(T) binding energy in σ dimers. The B3LYP-D3 method compares very well with CC for both σ and π dimers at the van der Waals minimum but underestimates the binding at larger distances. We used the largest possible atomic basis for these systems with 64-bit arithmetic, half-augmented-pVDZ, and the results were corrected for basis set incompleteness at the MP2 level.
机译:n个系统之间的堆叠交互是公认的结构图案,但是长期以来,系统之间的堆叠一直被认为具有次要的重要性。最近的一篇论文指出,σ堆积可以达到化学键的能量,并得出结论“σ/σ和π/π相互作用同等重要”(Fokin,AF; Gerbig,D。; Schreiner,PRJ Am。Chem。Soc。 2011,133,20036)。我们的分析表明,较强的分散相互作用需要刚性子系统,并且必须具有良好的排斥势壁,这对于石墨烯和较大的石墨烷(全氢石墨烯)都必须满足。在耦合簇(CC)CCSD(T)水平上将萘烷和全氢二烯的萘二聚能与萘和萘的二聚体的二聚能进行比较,证实了石墨烷中大量的σ堆积能,但结合能比Fokin的B97D计算要低。等。石墨烷的二聚能在CC水平上显着低于相应的π堆积能:全氢二甲苯的值仅是二甲苯的67%,并且差异随系统规模而增加。我们对萘的二聚能的最佳估计是6.1 kcal / mol。自旋分量缩放的MP2是不平衡的:在σ二聚体中,它仅提供70%的CCSD(T)结合能。对于范德华最小的σ和π二聚体,B3LYP-D3方法与CC的比较非常好,但低估了较大距离处的结合。我们对这些系统使用了最大可能的原子基础,采用64位算术半增强的pVDZ,并对结果进行了修正,以解决MP2级别上的基础集不完整的问题。

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  • 来源
    《Journal of the American Chemical Society》 |2012年第42期|17520-17525|共6页
  • 作者

    Tomasz Janowski; Peter Pulay;

  • 作者单位

    Department of Chemistry and Biochemistry, University of Arkansas, Fayetteville, Arkansas 72701, United States;

    Department of Chemistry and Biochemistry, University of Arkansas, Fayetteville, Arkansas 72701, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
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  • 正文语种 eng
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